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Cosmological backreaction in higher-derivative gravity expansions

Cosmological backreaction in higher-derivative gravity expansions
Cosmological backreaction in higher-derivative gravity expansions
We calculate a general effective stress-energy tensor induced by cosmological inhomogeneity in effective theories of gravity where the action is Taylor-expandable in the Riemann tensor and covariant derivatives of the Riemann tensor. This is of interest as an effective fluid that might provide an alternative to the cosmological constant, but it also applies to gravitational waves. We use an adaptation of Green and Wald's weak-averaging framework, which averages over perturbations in the field equation where the perturbation length scales are small compared to the averaging scale. In this adaptation, the length scale of the effective theory, 1/M, is also taken to be small compared with the averaging scale. This ensures that the perturbation length scales remain in fixed proportion to the length scale of the effective theory as the cosmological averaging scale is taken to be large. We find that backreaction from higher-derivative terms in the effective action can continue to be important in the late universe, given a source of sufficiently high-frequency metric perturbations. This backreaction might also provide a window on exotic particle physics in the far ultraviolet.
1475-7516
Preston, Anthony, William Henry
2ea7e55e-6b72-4085-a1a1-efbb1e8d0c74
Preston, Anthony, William Henry
2ea7e55e-6b72-4085-a1a1-efbb1e8d0c74

Preston, Anthony, William Henry (2016) Cosmological backreaction in higher-derivative gravity expansions. Journal of Cosmology and Astroparticle Physics. (doi:10.1088/1475-7516/2016/08/038).

Record type: Article

Abstract

We calculate a general effective stress-energy tensor induced by cosmological inhomogeneity in effective theories of gravity where the action is Taylor-expandable in the Riemann tensor and covariant derivatives of the Riemann tensor. This is of interest as an effective fluid that might provide an alternative to the cosmological constant, but it also applies to gravitational waves. We use an adaptation of Green and Wald's weak-averaging framework, which averages over perturbations in the field equation where the perturbation length scales are small compared to the averaging scale. In this adaptation, the length scale of the effective theory, 1/M, is also taken to be small compared with the averaging scale. This ensures that the perturbation length scales remain in fixed proportion to the length scale of the effective theory as the cosmological averaging scale is taken to be large. We find that backreaction from higher-derivative terms in the effective action can continue to be important in the late universe, given a source of sufficiently high-frequency metric perturbations. This backreaction might also provide a window on exotic particle physics in the far ultraviolet.

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1605.06121 - Accepted Manuscript
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Accepted/In Press date: 1 August 2016
e-pub ahead of print date: 18 August 2016
Published date: 18 August 2016
Organisations: Physics & Astronomy

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Local EPrints ID: 406289
URI: http://eprints.soton.ac.uk/id/eprint/406289
ISSN: 1475-7516
PURE UUID: 2ffe3966-7af7-4f36-9be2-1e31628d6209

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Date deposited: 10 Mar 2017 10:44
Last modified: 16 Mar 2024 05:04

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Author: Anthony, William Henry Preston

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